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Templating-dealloying synthesis and electrocatalytic properties of the low-density gold with hierarchical pore structure
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Affiliation:

1.School of Materials Science and Engineering,Sichuan University;2.P R China;3.Key Laboratory of Advanced Special Material Technology,Ministry of Education,Chengdu,

Clc Number:

TB31;TB34

Fund Project:

Chengdu Huimin Projects of Science and Technology (2015-HM02-00067-SF; Scienti?c and Technical Project of Sichuan Province (no. 2016GZ0225).

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    Abstract:

    The composite technique of templating and dealloying is proposed for synthesizing the low-density and hierarchical nanoporous gold (NPG). In this technique, the silica (SiO2) microspheres with an average diameter of ~700 nm are prepared as the sacrificial templates, the Ag@SiO2 and Au@Ag@SiO2 core-shell microspheres are prepared successively via the electroless plating approach, and the Au@Ag@SiO2 alloy bulks are formed through the cold-pressing and sintering method. By continually changing corrosion solutions, the templates and the Ag element can be completely eliminated from the Au@Ag@SiO2 alloy. The SiO2 templates are completely removed from Au@Ag@SiO2 microspheres so as to form the large-sized hollow spherical shells (with the diameter of ~675 nm), and the Ag element are eliminated by dealloying so as to generate a lot of small-sized pore (with the diameter of ~75 nm) structures on the shells. TEM images illustrate that the ligaments in NPG consist of the nano-grains with polycrystalline characteristic. The hierarchical NPG foam with low-density of 1.1 g/cm3 (the relative density of ~5.7 %) and high surface area of 4.24 m2/g shows the excellent catalytic activity and the rapid mass transfer rate for methanol electro-oxidation in alkali solution, which implies a promising application in catalysis.

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[Jing Chen, Lixian Lian, Ying Liu, Li Wang. Templating-dealloying synthesis and electrocatalytic properties of the low-density gold with hierarchical pore structure[J]. Rare Metal Materials and Engineering,2019,48(10):3088~3094.]
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History
  • Received:May 10,2018
  • Revised:September 22,2019
  • Adopted:September 07,2018
  • Online: November 01,2019
  • Published: